Technical Field of the Invention
[0001] The present invention relates generally to smart skin structures with vibration energy
managing and steering capabilities and in particular the present invention relates
to managing vibrations in the skin or shell of a system, subcomponent, device, or
structure.
Background of the Invention
[0002] Current passive vibration suppression methods are grouped in three main areas: energy
isolation, energy absorption, and energy dissipation through damping material and/or
damping devices. As the name implies, absorbers are added single- or multiple-degree-of
freedom systems designed to absorb vibration energy, while isolators intercept the
flow of vibration energy and prevent transmission to or from the system under consideration.
Note that in the former, the energy is taken out of the primary system and directed
to the absorbers while in the latter case, the energy is trapped to either side of
the isolators. In the case of added damping, however, energy is dissipated in the
form of noise and/or heat. There are many advantages for using these passive methods.
Vibration isolators, absorbers, and added damping elements are well understood and
have relatively simple mathematical models to aid in incorporating them in the design
stage, and have been used by designers and engineers for over a century. They may
be easy to manufacture and low cost to apply. However, passive methods have a few
important performance disadvantages. Isolators and absorbers are usually tuned to
one or a few selected resonant frequencies and, therefore, they are most effective
within a narrow band around the selected resonant frequencies. Their performance degrades
away from the designed frequency ranges. In certain cases, they may even amplify undesired
vibrations.
[0003] Vibration isolators are not effective when severe shock or vibratory loads are present.
The primary role of added damping in a structure is to take out more energy at a faster
rate. Thus, their performance depends on how well and how much energy is delivered
to the damping mechanism by the structure. Because structural vibrations are maximum
at resonance, damping treatment methods are most effective at and near the resonant
frequencies. Weight penalty is a concern when absorbers or added damping elements
are used to reduce low frequency vibrations. Furthermore, most damping materials have
a limited temperature range and perform better at higher frequencies. Therefore, a
more effective vibration suppression scheme with a broader frequency range is needed.
[0004] In recent years, a variety of AVC (Active Vibration Cancellation) methods have been
introduced to actively suppress vibrations. Most of these AVC techniques are based
on vibration concepts that have been combined with advances in microelectronics, signal
processing, material science, and control strategies to make a more adaptable and
effective vibration suppression system. In the case of the currently practiced AVC
systems with feedback controllers, vibrations are measured, fed back to the controller,
and an appropriate actuating action is taken. In this case, the actuator applies a
force or moment to counteract the existing vibrations. In the case of AVC systems
with feed-forward controllers, the source is measured, fed forward to the controller,
and then an appropriate actuating action is taken. In this case, actuators are used
to inject an identical disturbance with an appropriate phase shift with respect to
the measured signal at or near the source. Even though both AVC methods are conceptually
different, they have at least two common features: they both inject energy into the
system to cancel the existing undesired vibrations or noise, and they operate in a
reactive mode (i.e., sense, process, and respond). Current AVC methods are not capable
of altering the flow of vibrational energy within the structure.
[0005] U.S. Patent No. 6,116,389, entitled "Apparatus and Method for Confinement and Damping
of Vibration Energy," issued September 12,2000, and U.S. Patent No. 6,032,552, entitled
''Vibration Control by Confinement of Vibration Energy," issued March 7, 2000, address
vibration problems by noting that it may not be possible or practical to completely
suppress vibration for all parts of a system. The patents, however, recognize that
it may be practical to redirect or confine vibration to less critical or more easily
controllable regions. In these patents, the confinement is implemented by passive
or semi-active means which controlled the position and/or stiffness of structural
or machinery components.
[0006] Metallic and composite skins, such as panels surrounding an automobile, walls and
wallpapers used in construction, and boxes containing computers, are very important
and integral parts of a system. In particular, spaceships, aircraft, ships, and submarines
have load-bearing skins that not only have to withstand severe aerodynamic and hydrodynamic
loads (thus, load-bearing), but also must carry arrays of optical, acoustic, and radar-type
sensors. One of the primary tasks of a skin is to protect its cargo and sensor arrays.
[0007] Currently all skins (i.e., aircraft skin, automobiles, appliances, etc.) are simply
a relatively thin layer of either isotropic metal or multi layer composites. In addition
to conventional tasks, it would be desirable to have a skin that has the ability to
manage and steer vibration energy to minimize the damaging effect of vibratory loads.
A skin that can control noise and vibrations, via the control of power flow and energy
management, could be well suited to monitor the health of its host system (or component).
That is, the skin could detect damages and cracks at early stage, and localize damage
so it can be rapidly inspected and repaired before propagating to the rest of the
system.
[0008] Prior art document DE-A-198 13 959 discloses the features of the preamble of claims
1 and 11.
[0009] For the reasons stated above, and for other reasons stated below which will become
apparent to those skilled in the art upon reading and understanding the present specification,
there is a need in the art for intelligent skin that can be implemented to actively
alter vibration energy within the structure.
Summary of the Invention
[0010] The above-mentioned problems with structural vibrations and other problems are addressed
by the present invention and will be understood by reading and studying the following
specification.
[0011] The present invention provides a system that senses the amount, location, and type
of disturbing energy and confines, diverts, and steers excess disturbing energy in
order to protect itself and all components it carries from potential damage due to
random propagation of excess disturbing energy.
[0012] A structure according to the invention comprises a skin, sensors coupled to the skin
to measure vibrations of the skin, and actuators integral with the skin that are selectively
activated to apply forces to the skin to redirect vibration energy to one or more
predetermined skin regions. A passive element can then be used to dissipate the confined
vibration energy. The forces to be applied can be determined by spatial derivatives
of the vibrating system or through phase and magnitude of the detected vibrations.
Using the magnitude and phase of the detected disturbance, the appropriate phase and
magnitude of the forces applied by the actuators are determined.
[0013] In another embodiment, a structure having a skin material comprises an outer layer,
sensors coupled to the outer layer to measure vibrations in the outer layer, actuators
integral with the skin, and a controller coupled to the sensors to provide control
signals to the actuators.
[0014] A method of controlling vibrations in a skin structure according to the invention
comprises detecting vibrations in the skin structure, and applying feedback forces
to actuators integrally formed in the skin to redirect vibration energy.
[0015] A method of controlling vibrations in a skin structure can also comprise detecting
vibrations in the skin structure, and processing the detected vibrations to determine
appropriate feedback forces need to confine the vibrations. The feedback forces are
compared to historical data and baseline data to determine if a defect is present
in the skin structure. Finally, the feedback forces are applied by the actuators integrally
formed in the skin to confine or redirect vibration energy.
Brief Description of the Drawings
[0016]
Figure 1A illustrates a top view of a structure skin of an embodiment of the present
invention;
Figure 1B illustrates a perspective view of a structure skin of an embodiment of the
present invention;
Figure 1C illustrates a cross-section view of a structure skin of an embodiment of
the present invention;
Figure 1D illustrates a cross-section view of a flat structure skin of an embodiment
of the present invention having a passive element;
Figure 1E illustrates a cross-section view of a curved structure skin of an embodiment
of the present invention having a passive element;
Figure 2 illustrates a circulating confinement that can be induced using an embodiment
of the present invention;
Figure 3 illustrates vortex confinement that can be induced using an embodiment of
the present invention;
Figures 4A-4C show three possible power flow patterns used to manage energy in a structure
excited by a disturbing force;
Figures 5A and 5B illustrate one embodiment of a skin structure confining vibrations
using special derivatives;
Figures 6A and 6B illustrate some differences between a energy management system of
one embodiment of the present invention and currently practiced active vibration confinement
methods; and
Figure 7 is a flow chart of vibration confinement and defect detection of an embodiment
of the present invention.
Detailed Description of the Invention
[0017] In the following detailed description of the preferred embodiments, reference is
made to the accompanying drawings, which form a part hereof, and in which is shown
by way of illustration specific preferred embodiments in which the inventions may
be practiced. These embodiments are described in sufficient detail to enable those
skilled in the art to practice the invention. The following detailed description is,
therefore, not to be taken in a limiting sense, and the scope of the present invention
is defined only by the claims.
[0018] An embodiment of the present invention relates to load-bearing skin structures with
integrated energy-based hybrid vibration and noise control systems. The vibration
control strategy relies on a vibrational energy management system. The vibration control
system comprises both passive and active elements, each of which has two functions.
The passive elements provide energy dissipation at high frequencies and energy absorption
at resonance frequencies of the skin structure. Constrained layer damping (CLD) and
tunned-mass dampers (TMD) can be implemented for passive elements. The active elements
dissipate energy at low frequencies and to steer vibrational energy to specified regions
where excess energy can be more effectively absorbed or dissipated by passive and/or
active elements. As explained above, the active elements are incorporated in skin
material. Piezoelectric rod actuators can be used in one embodiment for active elements.
These passive and active elements allow energy management to be implemented in load
bearing skin structures, thereby, producing a high efficiency smart skin structure.
Smart skin structures have the capability of steering excited vibration energy in
an efficient and effective manner to minimize damaging effects and/or radiated noise
of propagating vibrations.
[0019] Numerous different materials can be used as sensors and/or actuators in smart skins
of the present invention. Piezoelectric technology (PZT) is only one of the many materials
suitable for smart skin applications. Piezoelectric technology can be applied as an
actuator in active vibration control. Piezoelectric materials can be used to convert
electrical energy into mechanical energy and vice versa. Piezoelectric technology
is widely used in precise motion (nanoscale) because of its many useful properties
such as repeatability in high frequency, wide load range, and no maintenance. Lead
zirconate titanate (PZT) based ceramic materials are the most often used. Some basic
designs for PZT actuators include, but are not limited to a rod design, stack design,
laminar design, tube design, and bender type designs. In a stack design, the actuator
consists of a stack of ceramic disks separated by thin metallic electrodes. Maximum
operating voltage is proportional to the thickness of the disks. Stack design actuators
can withstand high pressure and have the highest stiffness of all piezoelectric design
actuators. Spring preloaded actuators are considered because ceramics cannot withstand
large pulling forces. This design can be used for static and dynamic operation. In
a laminar design, the actuator consists of thin ceramic strips. The displacement of
these actuators is perpendicular to the direction of polarization and the electric
field. The maximum travel is a function of the length of the strips, and the number
of parallel strips determines the stiffness and stability of the element. In a tube
design, the actuators operate on the transversal piezoelectric effect. When a voltage
is applied between the outer and inner diameter, the tube contracts axially and radially.
When the outside electrode of the tube is separated into four segments, different
drive voltages lead to bending of one end. In a bender-type design, the actuators
operate similarly to a bimetallic strip in thermostats. When the ceramic is energized,
the metal substrate is deflected with a motion proportional to the applied voltage.
[0020] In one embodiment, the present invention uses active actuators provided with a skin
of a structure to induce a set of forces proportional to the spatial derivative (i.e.,
strain, shear force) of the structure at the point of application. In contrast, conventional
actuators used in active control systems generate a set of forces proportional to
the temporal derivatives of the displacement (i.e., velocity or acceleration). In
another embodiment, the present invention uses active actuators provided with a skin
of a structure to induce a set of forces defined by vortex power flow (VPF), as explained
below. As such, the present invention provides a 'smart' skin that can be used in
a limitless number of structural applications. The smart skin includes sensors and
actuators that allow for management of the structure's vibrations. The manner in which
the actuators are controlled can be based on creating vortexes in the energy flow
and/or the actuators can be controlled in response to spatial derivative of the system
displacement.
[0021] Figures 1A, 1B and 1C respectively illustrate a top view, a perspective view and
a cross-section view of a portion of a structure skin 100 or surface. Referring to
Figure 1A, one embodiment of the skin has numerous cells 101 that each contain actuators.
A perspective view of one cell 101 is illustrated in Figure 1B. The skin can be fabricated
from a suitable material, but will typically be formed with a metal or composite outer
layer 110. The skin can have a layer of insulator 103. The skin has actuators 102
located in a pattern and integral with the skin insulator layer 103, if provided.
The actuators are positioned to selectively exert forces on the outer layer 110. The
actuators in the illustrated embodiment are piezoelectric rods that can exert a force
on the skin structure. The actuators can be arranged in a grid pattern, or other patterns
specific to the structure configuration. The piezoelectric rods expand when subjected
to an electric field. Likewise, the piezoelectric rods can provide an electric field
when they are subjected to forces. Thus, some of the piezoelectric rods can be used
as sensors to detect vibration present in the skin. Referring to Figure 1C, the sensors
are coupled to a controller 150 that provides active feedback to the rods operating
as actuators. Other types of sensors and actuators are contemplated, and the present
invention is not limited to piezoelectric devices. The actuators can be separate add-on
components to the skin structures. Actuators that are integral with the skin, however,
provide more design options. As explained below, the present invention can provide
energy management for transportation and consumer systems, devices, subsystems, subcomponents,
and structures. For example, the skin of automobiles and aircraft can incorporate
the present invention. Consumer items such as refrigerators, air conditioners and
washing machines can also incorporate the present skin structures.
[0022] Figure 1D shows a simplified cross-section of one embodiment of a flat skin structure
152. The skin structure includes a passive element 154 that is coupled to the skin
to dissipate vibration energy confined to the skin location area containing the passive
elements. Figure 1E shows a simplified cross-section of one embodiment of a curved
skin structure 156. The skin structure includes a passive element 158 that is coupled
to the skin to dissipate vibration energy confined to the skin location area containing
the passive elements. It will be appreciated that flat and curved skin elements can
be used to construct any number of different shapes, such as spherical.
[0023] In one embodiment of the present invention, Energy Confinement by Vortex Power Flow
(EC-VPF) can control the feedback forces applied to the skin. Vortex-type intensity
response patterns generated in a structure, subjected to steady-state vibrations,
have a strong potential for confining the vibration power flow to a specific area
of the structure. Figure 2 shows a circulating confinement 160 (i.e., vortex power
flow) that can be induced by controlling the magnitudes and phases of an array of
attached actuators. Inducing power flow vortexes by an active control system is an
effective way to divert vibrational power flow away from critical sections 170 in
a structure 180. In certain applications, such diversion of vibrational power flow
may be more effective than the conventional methods used to suppress or dissipate
vibrational energy. It is noted that the power required to actively divert vibrational
energy can be significantly less than actively suppressing energy. Referring to Figure
3, vortex confinement can be induced using an embodiment of the present invention.
Several areas 310 having circular power flow are induced in the skin to isolate critical
areas 320 of the skin. Actuators 302 within the skin structure are used to induce
the confinement power flows.
[0024] When a loss-less structure is subjected to an external force, the natural vibration
modes of the structure are not instantly excited. The external energy injected into
a structure propagates as a progressive wave throughout the structure until reaching
its boundary. Depending on the characteristics of the boundary, evanescent as well
as reflected waves are generated in the structure. It is the interaction of the incident
and reflected waves that generate standing waves in a structure. Those mode shapes
identical to the formed standing waves are then excited. Therefore, preventing the
formation of the standing waves results in reduction of structural vibrations. The
progressive wave control can be utilized to reduce vibrations by eliminating its source,
namely reflected waves. The later approach makes all the structural vibration modes
inactive. In other words, a finite structure appears to have features similar to an
infinite structure in which vibration modes do not form. The standing wave control
technique, on the other hand, relies on the production of standing waves that do not
tune to the natural modes of a structure. In this case, the externally generated standing
waves dominate the structural response and thereby suppress the power flow.
[0025] Vibration intensity distribution patterns (also referred to as power flow patterns)
can be implemented in a structure in the numerous different patterns, such as but
not limited to a straight, S-shape, or vortex pattern. These power flow patterns have
the potential to confine excess vibrational energy in a restricted area, or to divert
power flow out of a specified section of a structure into another area. In both cases,
the critical section of the structure remains at a low vibration level.
[0026] The location and number a set of actuators is used in one embodiment of the present
invention to induce energy confinement and thereby trap the vibration energy near
the input source. The magnitude of a force applied by the actuators and a phase of
the force relative to the disturbance is also used to induce vortex confinement Contrary
to conventional methods that usually make an attempt to suppress, dissipate, or cancel
excess vibrational energy, energy confinement by Vortex Power Flow approach traps
vibrational energy around the disturbance source and away from the critical areas
while dissipating some of the energy during the process.
[0027] Figures 4A-4C show three possible power flow patterns used to manage energy in a
structure excited by a disturbing force and controlled by a single actuator. The power
flow patterns are straight, S-shaped, and vortex. If the structure is excited and
controlled near the first bending mode, power flows straight (see Figure 4A) from
the disturbance 200 (or source) to the actuator 202 (or sink). A straight flow pattern
may be used for actively steering energy to the most suitable location within a structure.
Exciting and controlling the structure near the fourth bending mode forces power to
flow in an S-shaped pattern (see Figure 4B) from the disturbance 200 (or source) to
the actuator 202 (or sink). Small vortices may be formed. An S-shaped flow pattern
may be useful in the cases when energy should be steered via complex paths to desirable
locations within a structure. Small and nested vortices, which coexist with S-shaped
flow patterns, may be utilized to isolate multiple critical components (i.e., sensitive
electronics or sensor array) within a structure, such as the skin of an air- or space-
borne vehicle. Finally, vortex power flow patterns (see Figure 4C) can be induced
when the structure is excited and controlled near the sixth bending mode. Power is
trapped in a circular pattern around the disturbance 200 (or source) and actuator
202. It is observed that the disturbance and actuator are not positioned at the center
(or "eye") of each vortex. A vortex power flow pattern is useful in preventing the
propagation of energy away from the source.
[0028] The present invention can have a significant influence on the reduction or control
of radiated noise when compared with conventional skins. In regard to attenuation
of radiated noise (such as reduction of noise in aircraft interior) and acoustic signals,
active noise control (ANC) and active structural acoustic control (ASAC) techniques
are effective in low-frequency ranges. In the case of ANC, sensors and actuators (i.e.,
microphones and loudspeakers) are required to be positioned in the acoustic field.
In the case of ASAC, however, sensors and actuators (i.e., accelerometers and PZT
patches) are usually integrated within a radiating structure. As in the case of ASAC
technique, the present invention allows for the integration of sensors and actuators
within the skin structure. However, what makes the proposed method distinct and superior
to the conventional ASAC approach is that actuators are used for the purpose of steering
and managing vibrational energy of a skin structure, thereby, reducing its radiating
power by proactively limiting certain regions of a structure to receive energy to
vibrate.
[0029] As explained above, the present smart skin can be controlled using vortex power flow.
The present invention can also provide feedback forces proportional to spatial derivatives
of system displacements, velocities, and/or accelerations to control the distribution
of vibration energy in a structure or machine. When applied in the proper proportions,
these feedback forces have the capacity to produce an exponentially varying vibration
response magnitude in a structure or component. As such, the system's response may
be tailored either to suppress or amplify vibration at specified regions or components.
Embodiments of the present invention include sensors, signal processing, and actuators
to monitor the response of the structure, calculate the spatial derivatives of the
system displacements, velocities, and accelerations, and apply the necessary feedback
forces.
[0030] In one embodiment, the present invention uses active feedback actuation to confine
vibration energy to specified regions of the skin by modifying the system's vibration
characteristics, referred to herein as Active Vibration Control by Confinement (AVCC).
This approach is distinctly different than prior active vibration control techniques
in that this technique utilizes not only the time-dependent characteristics of the
system response, but also their space-dependent characteristics. Through the application
of feedback forces proportional to the spatial partial derivatives of the system displacements,
velocities, and accelerations, vibration modes are altered to effectively confine
or redistribute the vibration energy in the spatial domain. Contrary to conventional
methods, the vibration response of the system can be controlled independently of the
type of disturbance.
[0031] The present invention is differentiated from prior vibration control methods on several
levels. Perhaps the most significant difference lies in the confinement of vibration
energy itself. In prior techniques, the reduction of vibration assumes that the control
mechanism responds to the incoming vibration. That is, the systems are reactive. The
present methodology, on the other hand, prohibits specified regions of a system from
accepting vibration energy. In this sense, the approach is proactive.
[0032] All currently available methods of vibration control assume that vibration will propagate
into a control region. That is, the unwanted vibration is addressed only after the
vibration has reached a critical area. Specifically, for isolation techniques, it
is assumed that vibration will be present in a system at the interface between two
components. It is at this interface that the isolation reacts to the incoming vibration,
reducing its propagation. For the case of absorption, without vibration being delivered
to the absorption mechanism, it is ineffective. This control method then reduces the
vibration energy in the remaining system components. Suppression techniques are most
effective when large amounts of energy are delivered to the damping mechanism. In
this case, it is first necessary for vibration to be present in the system, and only
then is it dissipated. Prior art active vibration control techniques rely on the application
of forces that counteract and cancel the vibration present in the system. For these
control mechanisms, it is assumed that vibration will first reach an unwanted region,
and then will be canceled. It is clear that each of these mechanisms operates in a
reactive mode.
[0033] In one embodiment of the instant invention, feedback forces proportional to the spatial
derivatives of the system displacements, velocities, and/or accelerations induce confinement.
The result is spatial vibration confinement in the form of an exponential decay in
vibration magnitude along the length of the structure or its components. As a result,
vibration is confined to non-critical regions of the system, preventing vibration
energy from propagating to regions of the system that must remain vibration free.
[0034] As described above, a first type of energy management or confinement that can be
implemented using the skin structure of the present invention is referred to herein
as Active Vibration Control by Confinement (AVCC). Vibration energy confinement can
be realized by an appropriate application of active forces using the skin actuators.
This approach can be used to assist or replace the implementation of confinement via
structural design modification or confining elements. Figures 5A and 5B illustrate
this type of energy confinement. A portion of a skin structure is illustrated in Figure
5A as having regions of maximum vibration 500 and regions of minimum vibration 510.
The terms minimum and maximum are not intended to be absolutes, but are used to demonstrate
significant differences between regions of the skin. Figure 5B is a cross-section
of the skin with representative vibration waves 520 illustrated. It will be appreciated
by those skilled in the art with the benefit of the present description, that the
actuators in the skin can be used to confine vibrations to specific regions.
[0035] The second type of energy management or confinement that can be implemented using
the skin structure of the present invention is referred to herein as Energy Confinement
by Vortex Power Flow (EC-VPF). Vortex-type intensity response patterns are generated
in the skin structure.
[0036] Some of the differences between the present energy management system and currently
practiced active vibration confinement methods are graphically displayed in Figures
6A and 6B. The standard steps in controlling vibrations based on common practices
are shown in Figure 6A and an embodiment of the present system is shown in Figure
6B. In Figure 6A, step 600 represent the initial stage of an open loop systems where
the structure is vibrating with its energy extended throughout its domain. Conventional
vibration control methods use passive and/or active damping elements 610 (circles
shown in step 602) are added to the structure, see step 612. After the damping elements
are activated, overall vibrations of the structure are reduced as shown in step 620.
[0037] One embodiment of the present energy-based smart vibration control system is illustrated
in Figure 6B. Step 630 illustrates energy vibrations 625 in a structure. The structure
includes actuators, as explained above, that can be controlled to manage energy. The
energy of the structure illustrated in step 630 is first moved from critical areas
of the structure to less critical areas as shown in step 640. In this illustrated
example, it is assumed that the middle section of the structure is a more critical
area whose excess vibrations can have significant impact on the overall performance,
safety, and mission attainability of the structure. Furthermore, it is assumed that
the two side sections are more suitable regions to trap the excess vibration energy.
The energy is confined using either the active forces application method, or the vortex
steering method explained above.
[0038] If desired, the excess vibration energy can then be removed or reduced by using either
passive or active elements (circles 660 shown in step 650). The resulting energy management
of the structure is shown in step 670. After the vibrational energy is removed via
the concentrated damping elements, the selected critical areas have several orders
of magnitude less vibration energy than the non-critical areas, step 680. It should
be noted that even the non-critical parts have lower levels of vibrations when compared
with common passive and active practices. Combining the spatial confinement of vibrations
and the concentrated passive and/or active damping elements are the two distinct features
of one embodiment of the energy management approach of the present invention. Spatial
confinement of the vibration energy using the skin structure allows system designers
and control experts to better utilize a limited number of passive elements and active
actuators whose power requirements have always been an issue.
[0039] The current invention has significant advantages over the other available methods.
The application of AVCC to vibrating skin systems allows specified regions of the
skin to reach an acceptable level of vibration faster than prior approaches. It is
conceivable that the current invention may be implemented to simply prohibit vibrational
energy from propagating into the critical regions of the skin. The current invention,
however, has the capability to reduce the absolute level of vibration to levels below
that of prior techniques. The redistribution of vibration energy, as embodied in the
current AVCC invention, dictates that less energy is needed to redirect the vibration
than is required to cancel it. The current invention may require less power and fewer
actuators than the prior active vibration cancellation methods since the prior methods
require vibration cancellation at all parts of the system.
[0040] The present invention differs from the currently available methods in the commercial
market by inducing a set of forces proportional to the spatial derivative (i.e., strain,
shear force) of the structure at the point of application. Further, vortex-type intensity
response patterns generated in a structure, subjected to steady-state vibrations,
have a strong potential for confining the vibration power flow into a specific area
of the structure.
[0041] There is a definite need for an effective and low cost vibration control system suitable
for both military and commercial applications. Skin structures have applications in
commercial watercraft, aircraft, space vehicles, automobiles, marine systems, machinery,
machine tools, and home appliances. For example, Figure 5 illustrates a simplified
airplane 300 having a skin structure according to the present invention. The skin
structure can be limited to specific locations of the airplane.
[0042] The skin structure of the present invention can be applied in vehicles whose load-bearing
skin make up a critical part and directly influence the performance and functionality
of the vehicle. Passenger and fighter aircraft, space vehicles, unmanned airborne
and underwater vehicles, submarines, surface ships, and automobiles will benefit by
incorporating the present inventions. In the case of passenger aircraft, the skin
can be used to eliminate cabin noise, which has been a major concern for the industry.
The invention can also be applied in systems whose skin is not a load-bearing element.
One of the most promising and exciting commercial applications is smart "wallpaper"
(i.e., a very thin skin). In a room or auditorium whose walls are composed of the
present skin, the acoustic characteristics of the room can be altered. In addition,
the present invention can be applied to computer enclosures to reduce the noise radiated
in office areas, clean rooms, and quality inspection rooms where even the smallest
disturbances cannot be tolerated. Suppression of vibration and shock are also very
critical in many systems such as antennas, airborne systems, aircraft, launch vehicles,
space structures, and ground and marine vehicles. An additional embodiment of the
present invention includes a skin material that is formed as tape that can be applied
to a surface to manage vibrations in the surface. In this embodiment, the tape is
similar to the skin described above. The tape, however, is substantially flexible
and may not contain an outer layer, such as a metal layer. In contrast, the actuators
of the tape have a thin layer that separated them from the attached surface.
[0043] All of the embodiments described herein can be self-powered. That is, the actuators
require some power supply. This power supply can be generated by using the sensors.
For example, piezoelectric sensors/actuators can be used to generate power from the
energy present in the skin structure. This power can be channeled to power the system
or charge batteries for the system.
[0044] In summary, the present invention can be applied in commercial watercraft, aircraft,
space vehicles, automobiles, marine systems, machinery, machine tools, home appliances,
and personal computers. It may also be used in buildings, bridges, and offshore oil
platforms. Another commercial application may be found in manufacturing and processing
plants. A smart structure with embedded energy-management characteristics will reduce
excess noise and vibrations of the machinery used in these plants and thereby, will
improve productivity, quality, and profitability.
[0045] Figure 7 illustrates a flow chart of an embodiment of the present invention. During
operation, the sensors coupled to the skin structure 680 detect vibrations, step 700.
An external processor at step 702 processes the sensor outputs. The processor determines
the appropriate feedback forces to apply to the skin using the actuators, step 706.
The sensors continue to monitor the vibrations to determine if the vibrations have
been modified. The processor can continue to adjust the actuators until the desired
level of confinement is reached. In an alternate embodiment, a look-up table of historical
data is used by the processor to determine if defects have developed in the structure.
That is, cracks of other defects that form in a skin can change the vibration response
of the system. The processor can detect these changes. The processor can then issue
a warning at step 712 that a potential defect has been identified and an inspection
is necessary. The processor then applies the feedback forces to the actuators and
surrounding actuators to reduce the possibility of propagation of the defect
Conclusion
[0046] A smart skin structure has been described with vibration energy managing and steering
capabilities. The skin can be used to managing vibrations in the skin or shell of
a system, subcomponent, device, or structure. The skin has sensors coupled to the
skin to obtain a response to vibrations. Actuators integral with the skin can be selectively
activated to apply forces to the skin to confine or redirect vibration energy to one
or more predetermined skin regions. The forces applied by the actuators can be controlled
to create confinement power flows. Further, the skin actuators can be controlled using
spatial derivatives of the vibration forces. The structure can be used in, but is
not limited to, watercraft, aircraft, space vehicles, automobiles, marine devices,
industrial machinery, machine tools, home appliances, buildings, bridges, and offshore
oil platforms.
1. A structure comprising :
a skin (100, 152);
sensors coupled to the skin to measure vibrations of the skin; characterized by
actuators (102, 202, 302) integral with the skin that are selectively activated to
apply forces to the skin to redirect vibration energy to one or more predetermined
skin regions.
2. The structure of claim 1, wherein the skin (100, 152) comprises a skin material having
an outer layer (110) and wherein the sensors are coupled to the outer layer to measure
vibrations in the outer layer and the actuators (102, 202, 302) are integral with
the skin (100, 152).
3. The structure according to any one of claims 1 to 2, wherein the structure is embodied
in one of a transportation device, a consumer device, or manufacturing equipment.
4. The structure according to any one of claims 1 to 3, wherein the actuators (102, 202,
302) comprise piezoelectric rods.
5. The structure according to any one of claims 1 to 4, wherein the sensors comprise
piezoelectric rods integrally formed in the skin (100, 152).
6. The structure according to any one of claims 1 to 5, wherein the sensors are coupled
to a controller to detect vibration forces and provide control signals to the actuators
(102, 202, 302).
7. The structure of claim 6, wherein the control signals activate the actuators (102,
202, 302) to provide either a straight pattern power flow in the skin (102, 152),
an s-shaped pattern power flow in the skin (102, 152), or a vortex pattern power flow
in the skin (102, 152).
8. The structure of claim 6, wherein the control signals activate the actuators (102,
202, 302) based upon spatial derivatives of the detected vibration forces.
9. The structure according to any one of claims 1 to 8, wherein the structure is either
flat or curved.
10. The structure according to any one of claims 1 to 9, and further comprising a passive
damping element (154, 158) coupled to the skin (100, 152).
11. A method of controlling vibrations in a skin structure (100, 152) comprising:
detecting vibrations in the skin structure (100, 152); and characterized by
applying feedback forces to actuators (102, 202, 302) integrally formed in the skin
structure (100, 152) to redirect vibration energy,
12. The method of daim 11, and further comprising before applying the feedback forces
to the actuators (102, 202, 302) integrally formed in the skin structure (100, 152)
to redirect the vibration energy :
processing the detected vibrations to determine appropriate feedback forces to apply;
comparing the determined feedback forces to historical data; and
determining if the defect is present in the skin structure (100, 152).
13. The method according to any one of claims 11 to 12, wherein applying feedback forces
to actuators (102, 202, 302) integrally formed in the skin structure (100, 152) to
redirect vibration energy comprises redirecting the vibration energy to one or more
predetermined regions of the skin structure (100, 152).
14. The method of claim 13, and further comprising dissipating the redirected vibration
energy from the one or more predetermined regions of the skin structure (100, 152)
using a passive dissipation element (154, 158).
15. The method according to any one of claims 11 to 14, wherein applying feedback forces
to actuators (102, 202, 302) integrally formed in the skin structure (100, 152) to
redirect vibration energy comprises creating an energy power flow pattern in the skin
structure (100, 152).
16. The method according to any one of claims 11 to 15, and further comprising :
generating a power supply voltage using sensors coupled to the skin structure (100,
152), wherein the sensors generate the power supply voltage in response to vibration
energy in the skin structure (100, 152); and
coupling the power supply voltage to the actuators (100, 152).
1. Struktur, umfassend:
eine Oberfläche (100, 152) und
mit der Oberfläche verbundene Sensoren zum Messen der Vibrationen der Oberfläche,
gekennzeichnet durch
Betätiger (102, 202, 302), die mit der Oberfläche eine Einheit bilden und die selektiv
aktiviert werden, um Kräfte auf die Oberfläche auszuüben, um Vibrationsenergie in
eine oder mehrere vorbestimmte Oberflächenregionen umzuleiten.
2. Struktur nach Anspruch 1, wobei die Oberfläche (100, 152) ein Oberflächenmaterial
umfaßt, das eine äußere Schicht (110) hat und wobei die Sensoren verbunden sind mit
der äußeren Schicht zum Messen von Vibrationen in der äußeren Schicht und mit den
Betätigern (102, 202, 302), die eine Einheit bilden mit der Oberfläche (100, 152).
3. Struktur nach einem der Ansprüche 1 bis 2, wobei die Struktur eingefügt ist in ein
Transportmittel, ein Verbrauchergerät oder eine Produktionsausrüstung.
4. Struktur nach einem der Ansprüche 1 bis 3, wobei die Betätiger (102, 202, 302) piezoelektrische
Stäbchen umfassen.
5. Struktur nach einem der Ansprüche 1 bis 4, wobei die Sensoren piezoelektrische Stäbchen
umfassen, die integral in der Oberfläche (100, 152) gebildet sind.
6. Struktur nach einem der Ansprüche 1 bis 5, wobei die Sensoren mit einer Steuereinheit
zum Ermitteln von Vibrationskräften und zum Liefern von Steuersignalen an die Betätiger
(102, 202, 302) verbunden sind.
7. Struktur nach Anspruch 6, wobei die Steuersignale die Betätiger (102, 202, 302) aktivieren,
um entweder einen Energiefluß mit geradlinigem Muster in der Oberfläche (100, 152),
einen Energiefluß mit S-förmigem Muster in der Oberfläche (100, 152) oder einen Energiefluß
mit spiralförmigem Muster in der Oberfläche (100, 152) bereitzustellen.
8. Struktur nach Anspruch 6, wobei die Steuersignale die Betätiger (102, 202, 302) basierend
auf räumlichen Ableitungen der erfaßten Vibrationskräfte aktivieren.
9. Struktur nach einem der Ansprüche 1 bis 8, wobei die Struktur entweder flach oder
gebogen ist.
10. Struktur nach einem der Ansprüche 1 bis 9, des weiteren umfassend ein passives Dämpfungselement
(154, 158), das mit der Oberfläche (100, 152) verbunden ist.
11. Verfahren zum Kontrollieren von Vibrationen in einer Oberflächenstruktur (100, 152),
umfassend:
Ermitteln der Vibrationen in der Oberflächenstruktur (100, 152),
gekennzeichnet durch
Anwenden von Feedback-Kräften auf Betätiger (102, 202, 302), die integral in der Oberflächenstruktur
(100, 152) gebildet sind, um Vibrationsenergie umzuleiten.
12. Verfahren nach Anspruch 11, des weiteren vor dem Anwenden der Feedback-Kräfte auf
die Betätiger (102, 202, 302), die integral in der Oberflächenstruktur (100, 152)
gebildet sind, um die Vibrationsenergie umzuleiten, umfassend:
Verarbeiten der ermittelten Vibrationen zum Bestimmen angemessener anzuwendender Feedback-Kräfte,
Vergleichen der bestimmten Feedback-Kräfte mit historischen Daten, und
Bestimmen, ob ein Defekt in der Oberflächenstruktur (100, 152) vorhanden ist.
13. Verfahren nach einem der Ansprüche 11 bis 12, wobei das Anwenden der Feedback-Kräfte
auf die Betätiger (102, 202, 302), die integral in der Oberflächenstruktur (100, 152)
gebildet sind, um Vibrationsenergie umzuleiten, ein Umleiten der Vibrationsenergie
in eine oder mehrere vorbestimmte Regionen der Oberflächenstruktur (100, 152) umfaßt.
14. Verfahren nach Anspruch 13, des weiteren umfassend ein Ableiten der umgeleiteten Vibrationsenergie
aus der einen oder mehreren vorbestimmten Region(en) der Oberflächenstruktur (100,
152) durch Verwenden eines passiven Ableitungselements (154, 158).
15. Verfahren nach einem der Ansprüche 11 bis 14, wobei das Anwenden der Feedback-Kräfte
auf Betätiger (102, 202, 302), die integral in der Oberflächenstruktur (100, 152)
gebildet sind, um Vibrationsenergie umzuleiten, ein Erzeugen eines Energieleistungsflußmusters
in der Oberflächenstruktur umfaßt (100, 152).
16. Verfahren nach einem der Ansprüche 11 bis 15 und des weiteren umfassend:
Erzeugen einer Versorgungsspannung unter Verwundung von Sensoren, die mit der Oberflächenstruktur
(100, 152) verbunden sind, wobei die Sensoren die Versorgungsspannung in Reaktion
auf die Vibrationsenergie in der Oberflächenstruktur (100, 152) erzeugen, und
Anlegen der Versorgungsspannung an die Betätiger (102, 202, 302).
1. Structure comprenant :
une peau (100, 152) ;
des capteurs qui sont couplés à la peau afin de mesurer des vibrations de la peau,
caractérisée par :
des actionneurs (102, 202, 302) qui sont d'un seul tenant avec la peau et qui sont
activés de façon sélective pour appliquer des forces sur la peau afin de rediriger
une énergie de vibration sur une ou plusieurs régions de peau prédéterminées.
2. Structure selon la revendication 1, dans laquelle la peau (100, 152) comprend un matériau
de peau comportant une couche externe (110) et dans laquelle les capteurs sont couplés
à la couche externe afin de mesurer les vibrations dans la couche externe et les actionneurs
(102, 202, 302) sont d'un seul tenant avec la peau (100, 152).
3. Structure selon l'une quelconque des revendications 1 et 2, dans laquelle la structure
est noyée dans un élément pris parmi un dispositif de transport, un dispositif grand
public et un équipement de fabrication.
4. Structure selon l'une quelconque des revendications 1 à 3, dans laquelle les actionneurs
(102, 202, 302) comprennent des barreaux piézoélectriques.
5. Structure selon l'une quelconque des revendications 1 à 4, dans laquelle les capteurs
comprennent des barreaux piézoélectriques formés d'un seul tenant dans la peau (100,
152).
6. Structure selon l'une quelconque des revendications 1 à 5, dans laquelle les capteurs
sont couplés à un contrôleur pour détecter des forces de vibration et pour appliquer
des signaux de commande sur les actionneurs (102, 202, 302).
7. Structure selon la revendication 6, dans laquelle les signaux de commande activent
les actionneurs (102, 202, 302) afin d'assurer soit une circulation de puissance de
motif rectiligne dans la peau (102, 152), soit une circulation de puissance de motif
en forme de S dans la peau (102, 152), soit une circulation de puissance de motif
en vortex dans la peau (102, 152).
8. Structure selon la revendication 6, dans laquelle les signaux de commande activent
les actionneurs (102, 202, 302) sur la base de dérivées spatiales des forces de vibration
détectées.
9. Structure selon l'une quelconque des revendications 1 à 8, dans laquelle la structure
est soit plane, soit courbe.
10. Structure selon l'une quelconque des revendications 1 à 9, comprenant en outre un
élément d'amortissement passif (154, 158) qui est couplé à la peau (100, 152).
11. Procédé de contrôle de vibration dans une structure de peau (100, 152) comprenant
:
la détection de vibrations dans la structure de peau (100,152),
caractérisé par :
l'application de forces de retour sur des actionneurs (102, 202, 302) qui sont formés
d'un seul tenant dans la structure de peau (100, 152) afin de rediriger une énergie
de vibration.
12. Procédé selon la revendication 11, comprenant en outre, avant l'application des forces
de retour sur les actionneurs (102, 202, 302) qui sont formés d'un seul tenant dans
la structure de peau (100, 152) afin de rediriger l'énergie de vibration :
le traitement des vibrations détectées pour déterminer des forces de retour appropriées
à appliquer ;
la comparaison des forces de retour déterminées avec des données historiques ; et
la détermination de si un défaut est présent dans la structure de peau (100, 152).
13. Procédé selon l'une quelconque des revendications 11 et 12, dans lequel l'application
de forces de retour sur des actionneurs (102, 202, 302) qui sont formés d'un seul
tenant dans la structure de peau (100, 152) afin de rediriger une énergie de vibration
comprend la redirection de l'énergie de vibration sur une ou plusieurs régions prédéterminées
de la structure de peau (100, 152).
14. Procédé selon la revendication 13, comprenant en outre la dissipation de l'énergie
de vibration redirigée depuis les une ou plusieurs régions prédéterminées de la structure
de peau (100, 152) en utilisant un élément de dissipation passif (154, 158).
15. Procédé selon l'une quelconque des revendications 11 à 14, dans lequel l'application
de forces de retour sur des actionneurs (102, 202, 302) qui sont formés d'un seul
tenant dans la structure de peau (100, 152) afin de rediriger une énergie de vibration
comprend la création d'un motif de circulation de puissance d'énergie dans la structure
de peau (100, 152).
16. Procédé selon l'une quelconque des revendications 11 à 15, comprenant en outre :
la génération d'une tension d'application de puissance en utilisant des capteurs qui
sont couplés à la structure de peau (100, 152), où les capteurs génèrent la tension
d'application de puissance en réponse à une énergie de vibration dans la structure
de peau (100, 152) ; et
le couplage de la tension d'application de puissance sur les actionneurs (102, 202,
302).